IP Library › Granted Patent US 12,553,017
Granted Patent B2
US 12,553,017 · App. 18/683,715 · Granted Feb 17, 2026

Apparatus for microscopic biolocigal organism observation

Inventors: Matteo Cornaglia (Lausanne, CH); Fabien Tache (Lausanne, CH)
Assignee: Nagi Bioscience SA
C12M23/16B01L3/502723C12M23/34C12M23/48C12M25/10C12M27/16C12M31/00G02B21/0004G06T7/0012B01L2200/0684G06T2207/10056
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Quick Facts
Patent No.
US 12,553,017
App. No.
18/683,715
Granted
Feb 17, 2026
Kind
B2
Abstract

Microscopic biological organism culture and observation apparatus ( 1 ) comprising a support structure ( 10 ), one or more chip holders ( 3 ) mounted on the support structure, a pump (P) and a valve system (V), each chip holder configured for holding a microfluidic chip ( 2 ) having one or more microfluidic channels ( 54 ) and culture chambers ( 52 ) therein extending between a pump coupling side ( 44 a ) of the microfluidic chip and a reservoir side coupling ( 44 b ) of the microfluidic chip. The support structure comprises a reservoirs support platform ( 7 ) mounted on a movable table ( 12 ), the reservoirs support platform ( 7 ) configured for holding a plurality of nutrition reservoirs ( 5 ) for containing microscopic biological organisms or nutrients and substances to be tested in a liquid. The chip holder ( 3 ) and/or microfluidic chips ( 2 ) comprise reservoir side fluidic couplings ( 26 ) in the form of hollow tubes extending from the microfluidic chip ( 2 ) to a tip ( 26 b ) at a free end of the hollow tube, each tip ( 26 b ) insertable in a corresponding nutrition reservoir ( 5 ). The movable table is coupled a height actuator mechanism ( 14 ) and an oscillating mechanism configured to oscillate the reservoir support platform ( 7 ) in a horizontal plane by an amplitude less than a diameter (D) of the nutrient reservoir ( 5 ), and actuate a vertical movement of the reservoir support platform with the height actuator mechanism ( 14 ).

Claims (13)

1 . An apparatus for microscopic biological organism culture and observation, the apparatus comprising a support structure, one or more chip holders mounted on the support structure, a pump and a valve system, each chip holder configured for holding a microfluidic chip having one or more microfluidic channels and culture chambers therein extending between a pump coupling side of the microfluidic chip and a reservoir side coupling of the microfluidic chip, the support structure comprising a reservoirs support platform and a movable table, the reservoirs support platform being mounted on the movable table, the reservoirs support platform including a support plate comprising a plurality of orifices configured for holding a plurality of nutrition reservoirs for containing microscopic biological organisms or nutrients and substances to be tested in a liquid, at least the microfluidic chips comprising reservoir side fluidic couplings in the form of hollow tubes extending from the microfluidic chips to a tip at a free end of the hollow tubes, each tip insertable in a corresponding nutrition reservoir, wherein the movable table is coupled to a height actuator mechanism to actuate a vertical movement of the reservoirs support platform with the height actuator mechanism and an oscillating mechanism configured to oscillate the reservoirs support platform in a horizontal plane by an amplitude less than a diameter of the nutrition reservoir when the free end of the hollow tube of the plurality of hollow tubes is inserted in the nutrition reservoirs for stirring the liquid in the nutrition reservoirs.

2 . The apparatus according to claim 1 wherein there are a plurality of said chip holders are arranged in parallel on the support structure.

3 . An apparatus for microscopic biological organism culture and observation, the apparatus comprising a support structure, one or more chip holders mounted on the support structure, a pump and a valve system, each chip holder configured for holding a microfluidic chip having one or more microfluidic channels and culture chambers therein extending between a pump coupling side of the microfluidic chip and a reservoir side coupling of the microfluidic chip, the support structure comprising a reservoirs support platform mounted on a movable table, the reservoirs support platform configured for holding a plurality of open nutrition reservoirs for containing microscopic biological organisms or nutrients and substances to be tested in a liquid, at least the microfluidic chips comprising reservoir side fluidic couplings in the form of hollow tubes extending directly from the microfluidic chips to a tip at a free end of the hollow tubes, each tip insertable in a corresponding open nutrition reservoir, wherein the movable table is coupled to a height actuator mechanism to actuate a vertical movement of the reservoirs support platform with the height actuator mechanism and an oscillating mechanism configured to oscillate the reservoirs support platform in a horizontal plane by an amplitude less than a diameter of the nutrition reservoir when the free end of the hollow tube of the hollow tubes is inserted in the open nutrition reservoirs for stirring the liquid in the nutrition reservoirs, wherein the apparatus further comprises a plurality of said microfluidic chips wherein each microfluidic chip comprises a plurality of parallel microfluidic channels, each microfluidic channel passing fluidically through a plurality of successive culture chambers.

4 . The apparatus according to claim 3 wherein each microfluidic channel comprises a pump side coupling orifice and a reservoir side coupling orifice, the orifices configured for insertably receiving in a sealing manner ends of hollow tubes.

5 . An apparatus for microscopic biological organism culture and observation, the apparatus comprising a support structure, one or more chip holders mounted on the support structure, a pump and a valve system, each chip holder configured for holding a microfluidic chip having one or more microfluidic channels and culture chambers therein extending between a pump coupling side of the microfluidic chip and a reservoir side coupling of the microfluidic chip, the support structure comprising a reservoirs support platform mounted on a movable table, the reservoirs support platform configured for holding a plurality of open nutrition reservoirs for containing microscopic biological organisms or nutrients and substances to be tested in a liquid, at least the microfluidic chips comprising reservoir side fluidic couplings in the form of hollow tubes extending directly from the microfluidic chips to a tip at a free end of the hollow tubes, each tip insertable in a corresponding open nutrition reservoir, wherein the movable table is coupled to a height actuator mechanism to actuate a vertical movement of the reservoirs support platform with the height actuator mechanism and an oscillating mechanism configured to oscillate the reservoirs support platform in a horizontal plane by an amplitude less than a diameter of the nutrition reservoir when the free end of the hollow tube of the hollow tubes is inserted in the open nutrition reservoirs for stirring the liquid in the nutrition reservoirs, wherein the apparatus further comprises a plurality of said microfluidic chips, wherein the microfluidic chips are fluidically coupled to corresponding fluidic tubes connectors pluggably coupled to the chip holder and sealingly lodging ends of fluidic tubes that extends to the pump and/or valve system.

6 . The apparatus according to claim 1 wherein the apparatus further comprises a tube tip sealing plate comprising a support frame and an elastomer pad movable under the tips of the hollow tubes and configured for sealingly pressing said elastomer pads against said tips during a corresponding operation step of the apparatus.

7 . The apparatus according to claim 6 wherein the apparatus executes a debubbling operation of the fluidic channels within the microfluidic chip during said operation step, wherein the pump is operated to create an overpressure within the fluidic channels in the debubbling operation.

8 . The apparatus according to claim 1 wherein the microfluidic chips comprises reservoir side coupling orifices, wherein said reservoir side coupling orifices of the microfluidic chip and corresponding hollow tubes are arranged in a spaced out manner in both X and Y orthogonal directions of a horizontal plane, such that the hollow tubes are spaced out according to a two-dimensional grid, the hollow tubes being arranged at intersections of a substantially square or rectangular grid.

9 . The apparatus according to claim 1 wherein the microfluidic chip further comprises a pump side fluidic coupling, wherein the pump side fluidic coupling comprises a plurality of hollow tubes coupled to the chip holder and inserted into corresponding pump side coupling orifices of the microfluidic chip.

10 . An apparatus for microscopic biological organism culture and observation, the apparatus comprising a support structure, one or more chip holders mounted on the support structure, a pump and a valve system, each chip holder configured for holding a microfluidic chip having one or more microfluidic channels and culture chambers therein extending between a pump coupling side of the microfluidic chip and a reservoir side coupling of the microfluidic chip, the support structure comprising a reservoirs support platform mounted on a movable table, the reservoirs support platform configured for holding a plurality of open nutrition reservoirs for containing microscopic biological organisms or nutrients and substances to be tested in a liquid, at least the microfluidic chips comprising reservoir side fluidic couplings in the form of hollow tubes extending directly from the microfluidic chips to a tip at a free end of the hollow tubes, each tip insertable in a corresponding open nutrition reservoir, wherein the movable table is coupled to a height actuator mechanism to actuate a vertical movement of the reservoirs support platform with the height actuator mechanism and an oscillating mechanism configured to oscillate the reservoirs support platform in a horizontal plane by an amplitude less than a diameter of the nutrition reservoir when the free end of the hollow tube of the hollow tubes is inserted in the open nutrition reservoirs for stirring the liquid in the nutrition reservoirs, wherein the apparatus further comprises a plurality of said microfluidic chips, wherein the chip holder comprises a base and a cover pivotally coupled to the base, movable from an open position in which the microfluidic chip may be lodged on the base, and movable to a closed position held by a closing mechanism clamping the microfluidic chip within the chip holder.

11 . The apparatus according to claim 1 wherein the chip holder comprises a viewing window in both a base and cover to allow light to shine through from a bottom of the microfluidic chip to a top side viewable by a microscope.

12 . The apparatus according to claim 1 wherein an imaging system comprising a microscope, a lighting system, and a computing system connected to the valve system and pump, actuator, lighting system and imaging system configured for automatic operation of microscopic biological organisms in the culture chambers of the microfluidic chip and imaging the microscopic biological organisms in said culture chambers over a period of time ranging between two days to three weeks.

13 . The apparatus according to claim 1 wherein the support structure comprises an enclosure forming a chamber within which the one or more chip holders and the reservoirs support platform is housed, and a temperature control unit and a temperature sensor for control of the temperature within the chamber, the enclosure comprising an openable or removable cover allowing access to the inside of the enclosure.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 15, 2024
From: CORNAGLIA, MATTEO; TACHE, FABIEN
To: NAGI BIOSCIENCE SA
Reel/Frame 066467/0250 →
Priority Claims (1)
EP 21191740 · Aug 17, 2021 · regional
Continuity (1)
Related Publication 20240263117A1 · Aug 8, 2024
References Cited (19)
US 10184104B2 · Lianides · 2019 [cited by applicant]
US 20130224846A1 · Jovanovich · 2013 [cited by examiner]
US 20160312166A1 · Lee et al. · 2016 [cited by applicant]
US 20170145373A1 · Lianides et al. · 2017 [cited by applicant]
US 20180016296A1 · Murphy · 2018 [cited by examiner]
US 20180128715A1 · Kim · 2018 [cited by examiner]
CN 105543085A · 2016 [cited by applicant]
EP 3209790A1 · 2017 [cited by applicant]
JP 2012529268A · 2012 [cited by applicant]
JP 2015500020A · 2015 [cited by applicant]
WO 2016063199A1 · 2016 [cited by applicant]
WO 2017027838A1 · 2017 [cited by applicant]
Chokshi, Trushal Vijaykumar, et al., “An automated microfluidic platform for calcium imaging of chemosensory neurons in Caenorhabditis elegans”, Lab on a Chip, vol. 10, No. 20, 2010, pp. 2758-2763. [cited by applicant]
Wang, Jingjing, et al., “Microfluidic worm-chip for in vivo analysis of neuronal activity upon dynamic chemical stimulations”, Analytica Chimica Acta, vol. 701, No. 1, 2011, pp. 23-28. [cited by applicant]
International Search Report and Written Opinion of the ISA for PCT/EP2022/072868 mailed Nov. 29, 2022, 15 pages. [cited by applicant]
International Preliminary Report on Patentability for PCT/EP2022/072868 completed Aug. 3, 2023, 13 pages. [cited by applicant]
Matteo Cornaglia et al., “An automated microfluidic platform for C. elegans embryo arraying, phenotyping, and long-term live imaging”, Scientific Reports, vol. 5, May 7, 2015, p. 10192. [cited by applicant]
Office Action dated Sep. 10, 2024, issued in Japan Patent Application No. 2024-510267, 3 pages. [cited by applicant]
U.S. Appl. No. 18/683,730, filed Feb. 14, 2024. [cited by applicant]